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纤维图案化纳米超级电容器:尺寸最小化且性能超高

FIB-Patterned Nano-Supercapacitors: Minimized Size with Ultrahigh Performances.

作者信息

Zhuang Peiyuan, Sun Yangye, Li Lei, Chee Mason Oliver Lam, Dong Pei, Pei Liyuan, Chu Hang, Sun Zhengzong, Shen Jianfeng, Ye Mingxin, Ajayan Pulickel M

机构信息

Institute of special materials and technology, Fudan University, Shanghai, P. R. China.

Department of Chemistry and Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Fudan University, Shanghai, P. R. China.

出版信息

Adv Mater. 2020 Apr;32(14):e1908072. doi: 10.1002/adma.201908072. Epub 2020 Feb 19.

Abstract

Advances in microelectronic system technology have necessitated the development and miniaturization of energy storage devices. Supercapacitors are an important complement to batteries in microelectronic systems; and further reduction of the size of micro-supercapacitors is challenging. Here, a novel strategy is demonstrated to break through the resolution limit of micro-supercapacitors by preparing nano-supercapacitors (NSCs) with interdigital nanosized electrodes using focused ion beam technology. The minimization of the size of the NSCs leads to a large increase in capacitance, with a high areal capacitance of 9.52 mF cm and a volumetric capacitance of 18 700 F cm , far superior to those of other reported works. Size reduction and the narrowing of the physical separation between nanoelectrodes are proved to be the most crucial factors in the enhancement of capacitive performances. New charge-storage mechanisms are discovered with a remarkable nonfaradaic double-layer capacitance that exists due to the considerable inner electric field force at the nanoscale. The developed strategy and the first set of data provided here shed light on the design and fabrication of flexible interdigitated NSCs that rival state-of-the-art supercapacitors in performance.

摘要

微电子系统技术的进步使得储能设备的发展和小型化成为必要。超级电容器是微电子系统中电池的重要补充;而进一步减小微型超级电容器的尺寸具有挑战性。在此,展示了一种新颖的策略,即通过使用聚焦离子束技术制备具有叉指式纳米尺寸电极的纳米超级电容器(NSC)来突破微型超级电容器的分辨率极限。NSC尺寸的最小化导致电容大幅增加,其面电容高达9.52 mF/cm²,体积电容为18700 F/cm³,远优于其他已报道的工作。尺寸减小和纳米电极之间物理间距的缩小被证明是提高电容性能的最关键因素。发现了新的电荷存储机制,由于纳米尺度上相当大的内电场力,存在显著的非法拉第双层电容。这里提出的开发策略和第一组数据为柔性叉指式NSC的设计和制造提供了思路,其性能可与最先进的超级电容器相媲美。

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